Simulation of open quantum systems via low-depth convex unitary evolutions

Fuente: arXiv
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Autori principali: Peetz, Joseph, Smart, Scott E., Tserkis, Spyros, Narang, Prineha
Natura: Preprint
Pubblicazione: 2023
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author Peetz, Joseph
Smart, Scott E.
Tserkis, Spyros
Narang, Prineha
author_facet Peetz, Joseph
Smart, Scott E.
Tserkis, Spyros
Narang, Prineha
contents Simulating physical systems on quantum devices is one of the most promising applications of quantum technology. Current quantum approaches to simulating open quantum systems are still practically challenging on NISQ-era devices, because they typically require ancilla qubits and extensive controlled sequences. In this work, we propose a hybrid quantum-classical approach for simulating a class of open system dynamics called random-unitary channels. These channels naturally decompose into a series of convex unitary evolutions, which can then be efficiently sampled and run as independent circuits. The method does not require deep ancilla frameworks and thus can be implemented with lower noise costs. We implement simulations of open quantum systems up to dozens of qubits and with large channel ranks.
format Preprint
id arxiv_https___arxiv_org_abs_2307_14325
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Simulation of open quantum systems via low-depth convex unitary evolutions
Peetz, Joseph
Smart, Scott E.
Tserkis, Spyros
Narang, Prineha
Quantum Physics
Simulating physical systems on quantum devices is one of the most promising applications of quantum technology. Current quantum approaches to simulating open quantum systems are still practically challenging on NISQ-era devices, because they typically require ancilla qubits and extensive controlled sequences. In this work, we propose a hybrid quantum-classical approach for simulating a class of open system dynamics called random-unitary channels. These channels naturally decompose into a series of convex unitary evolutions, which can then be efficiently sampled and run as independent circuits. The method does not require deep ancilla frameworks and thus can be implemented with lower noise costs. We implement simulations of open quantum systems up to dozens of qubits and with large channel ranks.
title Simulation of open quantum systems via low-depth convex unitary evolutions
topic Quantum Physics
url https://arxiv.org/abs/2307.14325